US20060145889A1 - System for Testing Properties of a Network - Google Patents

System for Testing Properties of a Network Download PDF

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US20060145889A1
US20060145889A1 US10/904,799 US90479904A US2006145889A1 US 20060145889 A1 US20060145889 A1 US 20060145889A1 US 90479904 A US90479904 A US 90479904A US 2006145889 A1 US2006145889 A1 US 2006145889A1
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network
signal
electromagnetic
properties
analog signal
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US7548068B2 (en
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Michael Rawle
David Bartholomew
Marshall Soares
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Intelliserv LLC
Novatek Inc
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01VGEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
    • G01V11/00Prospecting or detecting by methods combining techniques covered by two or more of main groups G01V1/00 - G01V9/00
    • G01V11/002Details, e.g. power supply systems for logging instruments, transmitting or recording data, specially adapted for well logging, also if the prospecting method is irrelevant

Definitions

  • the present invention relates to the field of system analysis and diagnostics, particularly in a downhole network along a drill string used in oil and gas exploration, or along the casings and other equipment used in oil and gas production.
  • U.S. Pat. No. 3,978,282 discloses an apparatus and method for measuring the characteristics of a network in which a substantially non-interfering, low-intensity sweeping test signal is transmitted along a network to be tested.
  • a reference signal is transmitted along with a test signal for synchronizing the operation of tracking means.
  • U.S. Pat. No. 5,307,284 discloses a vector network analyzer, which utilizes a single voltage controlled oscillator to produce a sweep frequency over time, which is supplied to a device under test.
  • the return signal from the device under test is delayed and mixed with the original signal to produce an intermediate frequency signal that is digitized and the data manipulated by a computer to measure the reflection coefficient or transmission coefficient of the device under test.
  • U.S. Pat. No. 4,739,325 discloses an apparatus and method for down-hole EM telemetry while drilling which utilizes a down-hole microprocessor unit and a surface data processing unit (computer) each of which continuously monitors, probes and sweeps the frequency spectrum with EM signals to determine an optimum frequency for signal transmission between the respective units via either the drill string, the surrounding strata, or both
  • U.S. patent application Ser. No. 10/708,775 filed Mar. 24, 2004 in the name of Hall, et al. discloses a method and apparatus for testing electromagnetic connectivity in a drill string.
  • the method comprises transmitting a test signal along a transmission path in a drill string; receiving a reflection of the test signal; and determining from the reflection whether there is an interruption in the electromagnetic connectivity in the transmission path.
  • the apparatus comprises a signal generator for generating a test signal into the drill string; a receiver for receiving the reflection of the test signal; and means for determining from the reflection whether there is an interruption in the electromagnetic connectivity in the transmission path.
  • a method for identifying properties of a downhole electromagnetic network in a downhole tool string comprising the step of providing an electromagnetic path intermediate a first location and a second location on the electromagnetic network.
  • the method further comprises the step of providing a receiver at the second location.
  • the receiver is integrated into the electromagnetic network and comprises a known reference.
  • the analog signal comprises a set amplitude, a set range of frequencies, and a set rate of change between the frequencies.
  • the method further comprises the steps of sending the analog signal, and passively modifying the signal.
  • the analog signal is sent from the first location through the electromagnetic path, and the signal is modified by the properties of the electromagnetic path.
  • the method further comprises the step of receiving a modified signal at the second location and comparing the known reference to the modified signal. The differences between the known reference and the modified signal reveal the properties of the electromagnetic path.
  • the electromagnetic network may comprise inductive couplers.
  • the properties may be frequency response of the network, signal attenuation, or impedance of circuitry along the electromagnetic path of the network.
  • the inductive couplers may affect the impedance of the network or signal attenuation at certain frequencies.
  • the first location is downhole relative to the second location.
  • the first location may be uphole relative to the second location.
  • the range of frequencies may be between 0 Hz and 10 MHz.
  • the analog signal may be transmitted by a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment.
  • the analog signal may be received by a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment.
  • the step of comparing the known reference to the modified signal may comprise steps selected from the group consisting of analyzing the spectrum of the modified signal, performing logical computations using the modified signal, and comparing expected values to actual values.
  • the method further comprises the step of sending data representing the modified signal over the electromagnetic network.
  • the known reference may be compared to the modified signal by a facilitator such as a computer, surface equipment, or a network node.
  • the receiver may compare the known reference to the modified signal to reveal the properties of the network
  • a system for testing properties of an electromagnetic network in a segmented downhole tool string which comprises a transmitter and a receiver.
  • the transmitter is in communication with the electromagnetic network and is adapted to transmit a varying analog signal along the network.
  • the receiver is in communication with the electromagnetic network and is adapted to receive the varying analog signal. Differences between the transmitted analog signal and the received signal reveal the properties of the network.
  • the system further comprises a facilitator adapted to receive data representing the transmitted analog signal and facilitate comparing the transmitted analog signal and the received signal to reveal the properties of the network.
  • the facilitator may be a computer, surface equipment, or a network node.
  • the receiver may be adapted to compare the transmitted analog signal and the received signal to reveal the properties of the network. Knowing the properties of the network may help reveal manufacturer defects, electrical shorts, or useful transmission bands for the network.
  • FIG. 1 is a block diagram of a system for testing properties of an electromagnetic network comprising multiple downhole nodes.
  • FIG. 2 is a block diagram of a system for testing properties of an electromagnetic network comprising a facilitator.
  • FIG. 3 is a block diagram of a system for testing properties of an electromagnetic network comprising only a transmitter and a receiver.
  • FIG. 4 is a block diagram of a system for testing properties of an electromagnetic network the first location being uphole relative to the second location.
  • FIG. 5 is a flowchart of a method for testing properties of an electromagnetic network.
  • FIG. 6 is a flowchart of a more detailed method for testing properties of an electromagnetic network.
  • FIG. 1 is the preferred embodiment of a system 76 for testing properties of an electromagnetic network 39 .
  • the network 39 is integrated into a segmented downhole tool string 40 and an analysis instrument 59 is in communication with the network 39 .
  • the analysis instrument 59 may be a computer.
  • the electromagnetic network 39 comprises inductive couplers 80 .
  • the present invention may be able to compute the complex impedance of the inductive couplers 80 , and may aide in utilizing the pass band of the network 39 in the most efficient way.
  • a system of inductive couplers that may be used for transmitting data in a downhole network is disclosed in U.S. Pat. No. 6,670,880 to Hall, et al., entitled “Downhole Data Transmission System,” and is herein incorporated by reference.
  • Each downhole node 61 may be adapted to transmit a varying analog signal 31 to an adjacent device 61 , 59 located uphole relative to the downhole node 61 .
  • the varying analog signal 31 may be transmitted directly from one device 61 , 59 to another.
  • Data 67 representing the varying analog signal 31 may be sent from each downhole node 61 receiving a varying analog signal 31 to the analysis instrument 59 which may be adapted to facilitate comparing the transmitted analog signal 31 to a received signal 31 to reveal the properties of the network 39 .
  • the determinable properties may be frequency response of the network 39 , signal attenuation, or impedance of network circuitry.
  • One embodiment of the present invention may be that the analysis instrument 59 sends a varying analog signal 31 to the downhole node 61 closest to the opening of the well-bore over a portion of the network 39 .
  • the downhole node 61 may then send data representing the varying analog signal 31 back over that same portion of the network 39 to the analysis instrument 59 , and the analysis instrument 59 may then compare the transmitted analog signal 31 to the signal 31 received by the node 61 in order to compute the properties of the portion of the network.
  • the transmission of the varying analog signal 31 and the data occur at different times, as the varying analog signal 31 may operate over the same range of frequencies as the network 39 , and may interfere with the transmission of data.
  • Another embodiment of the present invention may be that the analysis instrument 59 sends a request for a varying analog signal 31 to an adjacent downhole node 61 .
  • the downhole node 61 may then send a varying analog signal 31 to the analysis instrument 59 , and the analysis instrument 59 may then receive the varying analog signal 31 and compare the transmitted analog signal 31 to the signal 31 received in order to compute the properties of the network 39 .
  • the analysis instrument 59 may have prior knowledge of the varying analog signal 31 , which may be compared the signal 31 received.
  • the response of the network 39 to the varying analog signal 31 is considered to be the frequency response of the network 39 .
  • the frequency response of the network 39 may be used to compute the characteristic impedance of the portion of the network 39 under test.
  • the characteristic impedance of the network 39 may be compared to calculated values for the characteristic impedance, and may reveal manufacturer defects or design errors.
  • the characteristic impedance of circuitry may be used to find an area of higher or lower impedance, which may indicate a poor electro-mechanical connection such as a poor pipe joint, which may have higher impedance, or a shorted wire, which may have lower impedance.
  • Signal attenuation may be used to show a pass-band of certain frequencies, which may be useful in computing what frequencies are best used for the network 39 .
  • Knowledge of the pass band may also be used to determine what circuitry is needed to change the pass band, either to shift the range of frequencies passed by the pass band or to change the shape of the pass band.
  • the impedance of network circuitry may be useful to determine where there are impedance mismatches such that power losses may occur, and where network signal reflections may be occurring. This may be advantageous as reflection of network signals may cause distortion or inter-symbol interference of network communication.
  • FIG. 2 shows an embodiment of a system for testing properties of an electromagnetic network 39 in a segmented downhole tool string 40 .
  • a transmitter 37 may comprise a signal generator 30 for transmitting a varying analog signal 31 along an electromagnetic network 39 .
  • the transmitter 37 may further comprise a switch 34 , and a network interface modem (NIM) 35 .
  • the switch may be used to switch between the functions of testing the properties of the network 39 and communicating via the network 39 .
  • the NIM 35 may be used for communicating via the network 39 .
  • a receiver 38 may be uphole relative to the transmitter 37 , and may comprise a signal receiver 32 for receiving the varying analog signal 31 .
  • the receiver 38 may further comprise a switch 34 , and a NIM 35 .
  • the transmitter 37 and the receiver 38 may be selected from the group consisting of network nodes, spectrum analyzers, repeaters, tools, drilling assemblies, computers, and surface equipment.
  • the receiver 38 may also be in communication with a facilitator 50 via the network 39 .
  • Data 48 representing the varying analog signal 31 may be sent to the facilitator 50 .
  • the facilitator 50 may comprise a NIM 35 and a processor 33 for facilitating determination of the differences between the transmitted varying analog signal 31 and the received signal. The differences between the transmitted varying analog signal 31 and the received signal may help determine the properties of the network 39 .
  • the facilitator 50 may be a computer. Alternatively, the facilitator 50 may be a network node, a tool, a drilling assembly, or surface equipment.
  • a facilitator may comprise a computer program or algorithm which may determine the differences between the transmitted varying analog signal 31 and the received signal and compute the properties of the network.
  • a facilitator may comprise electronic components or circuit elements such as an FPGA or integrated circuits which may perform the necessary computations.
  • a spectrum analyzer which is commonly known in the art, may also be used as a facilitator to receive the signal 31 and perform the computations.
  • An apparatus which comprises such computer programs, algorithms, electronic components or circuit elements for performing the computations to determine differences between the transmitted varying analog signal 31 and the received signal and the properties of the network may be considered a facilitator. It may be difficult to have the capability of computing the properties downhole, and it may be desirable to send the data 48 to a facilitator 50 to perform the computations on large quantities of data 48 .
  • the facilitator 50 may perform some or all of the computations or analysis necessary to compute the properties of the network 39 .
  • each receiver 38 may determine the properties of the portion of the network 39 through which the varying analog signal 31 was transmitted.
  • Data 48 may then be collected from a number of receivers 38 , and the facilitator 50 may compare the data 48 to find correlations.
  • FIG. 3 shows functional block diagram of an embodiment of a system for testing properties of an electromagnetic network 39 integrated into a tool string 40 .
  • a first location 78 may be a transmitter 37 which may comprise a signal generator 30 for transmitting a varying analog signal 31 along a network 39 , a switch 34 for switching between the functions of testing the network 39 and communicating via the network 39 , a NIM 35 , and other devices 36 .
  • a switch 34 may be necessary as the varying analog signal 31 may violate network protocol, and may not be transmittable through a NIM 35 .
  • the signal generator 30 may be always connected to the network 39 , and the transmitter 37 may simply govern when the signal generator 30 operates.
  • the other devices 36 may be a router, local node circuitry, a tool port, or data acquisition devices.
  • the second location 79 may be a receiver 38 which may comprise a signal receiver 32 for receiving the varying analog signal 31 , a switch 34 for switching between the functions of testing the network 39 and communicating via the network 39 , a NIM 35 , and other devices 36 .
  • the receiver 38 may further comprise a processor 33 for computing the properties of the network 39 .
  • the processor may determine the properties of the network 39 independent of a facilitator 50 as seen previously.
  • FIG. 4 shows an embodiment of a system for testing properties of an electromagnetic network 39 .
  • a transmitter 37 may be at a first location 78 and may send a varying analog signal 31 to a receiver 38 at a second location 79 downhole relative to the transmitter 37 .
  • the receiver 38 may comprise a processor 33 for computing properties of the network 39 .
  • the switch 34 and the NIM 35 seen previously may not be necessary.
  • the signal generator 30 and the signal receiver 32 may be connected directly to the network 39 .
  • FIG. 5 shows a flowchart of an embodiment of a method 51 for testing properties of a network 39 and references FIG. 3 .
  • the method 51 comprises the step of providing 41 an electromagnetic path 83 intermediate a first location 78 and a second location 79 on the electromagnetic network 39 .
  • the first location 78 may be a transmitter 37 .
  • the first location 78 is preferably downhole relative to the second location 79 .
  • the first location 78 may be uphole relative to the second location 79 .
  • the method 51 comprises the step of providing a receiver 38 at the second location 79 integrated into the electromagnetic network 39 and comprising a known reference.
  • the receiver 38 may be disposed in a recess in a downhole tool string 40 , and may not be easily moved.
  • the known reference comprises a set amplitude, a set range of frequencies, and a set rate of change between the frequencies.
  • the known reference may be a digital representation of the analog signal 31 before transmission.
  • the reference may have a set amplitude, a set range of frequencies, and a set rate of change between the frequencies which correspond to the analog signal 31 .
  • the known reference may be stored in memory (not shown) in the receiver 38 .
  • the known reference may alternatively be communicated digitally between the transmitter 37 and the receiver 38 over the network 39 before the signal 31 is transmitted.
  • the range of frequencies is the range of frequencies used by the network 39 .
  • the range of frequencies may be between 0 Hz and 10 MHz.
  • the actual range of frequencies may vary due to the sampling rate of the signal receiver 32 , since the sampling rate may need to be at least twice the highest frequency in the range of frequencies.
  • the sampling rate of the signal receiver 32 may be increased by providing faster hardware which may sample the signal 31 at a faster rate.
  • the range of frequencies may alternatively be selected 0 Hz and 50 Mhz, and such a range may provide information about the properties of the network 39 for higher frequencies. In other embodiments the range of frequencies may be between 0 Hz and 100 MHz.
  • the method 51 also comprises the steps of sending 43 the analog signal from the first location 78 through the electromagnetic path 83 and modifying 44 the varying analog signal 31 .
  • the frequency of the varying analog signal 31 may be varied by performing a frequency sweep within the range of frequencies according to the set rate of change.
  • the signal 31 is modified passively by the properties of the electromagnetic path 83 as the varying analog signal 31 is transmitted from the first location 78 to the second location 79 .
  • the varying analog signal 31 may be transmitted by a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment.
  • the method further comprises the step receiving 53 a modified signal at the second location 79 .
  • the varying analog signal 31 may be received by the receiver, which may be a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment.
  • the method 51 further comprises the step comparing 45 the known reference to the modified signal 31 .
  • the known reference may be pre-programmed or otherwise stored in the receiver 38 and may therefore be compared to the modified signal 31 .
  • the differences between the known reference and the modified signal reveal the properties of the electromagnetic path 83 .
  • the properties may be frequency response of the network 39 , signal attenuation, or impedance of network circuitry.
  • the receiver 38 may compare the signals 31 . Generally, the range of frequencies and the rate of change between the frequencies is used to correlate the modified signal 31 received by the receiver 38 with the known reference. This correlation may show the frequency response of the network 39 , which may be how the varying analog signal 31 is altered by the portion of the network 39 over which it travels. This correlation may be made without the use of a transmitted reference signal, as the receiving device 38 may perform a spectrum analysis, or computations such as Laplace transforms or Fourier transforms, as will be discussed shortly.
  • FIG. 6 shows a flowchart of an embodiment of a method 52 for testing properties of a network 39 , and references FIG. 2 .
  • This method 52 comprises the steps of providing 41 an electromagnetic path 83 , providing 42 a receiver 38 at the second location 79 comprising a known reference, sending 43 the analog signal 31 , modifying 44 the analog signal, and receiving 53 the signal 31 as disclosed in the method 51 shown in FIG. 5 and discussed previously.
  • This method 52 further comprises the step of transmitting 77 data 48 representing the varying analog signal 31 over the electromagnetic network 39 .
  • the data 48 is transmitted to a facilitator 50 .
  • the method 52 also comprises the step of comparing 45 the known reference to the modified signal 31 .
  • the differences between the known reference and the modified signal reveal the properties of the electromagnetic path 83 .
  • the properties may be frequency response of the network 39 , signal attenuation, or impedance of network circuitry.
  • the properties are computed by a facilitator 50 which may be a computer, surface equipment, or a network node.
  • the receiver 38 may compute the properties of the network, as previously discussed.
  • the step of comparing 45 the known reference to the modified signal 31 may comprise one or more of steps 46 , 47 , 49 .
  • the step of analyzing 46 the spectrum of the varying analog signal 31 may show the frequency response of the network 39 .
  • the step of performing 47 logical computations using the varying analog signal 31 may include the use of Fourier transforms, Laplace transforms, or FFT's. This may show the complex impedances of the network 39 , and may be used to adjust or tune the circuit to certain desired characteristics, such as a specific pass band or impedance matching. Once the complex impedances of the network 39 are known, additional circuitry may be added to adjust or tune the pass-band of the network.
  • the step of computing 45 the properties of the network 39 may further comprise the step of comparing 49 expected values to actual values of the varying analog signal 31 .
  • An example of how expected values may be compared to actual values is that the complex impedances previously discussed may be compared to the complex impedances calculated from known parameters. A difference may indicate a short in a wire, a damaged component, or a poorly matched connection in a network.

Abstract

A method for identifying properties of a downhole electromagnetic network in a downhole too string, comprising the step of providing an electromagnetic path intermediate a first location and a second location on the electromagnetic network. The method further comprises the step of providing a receiver at the second location. The receiver comprises a known reference. The analog signal comprises a set amplitude, a set range of frequencies, and a set rate of change between the frequencies. The method further comprises the steps of sending the analog signal, and passively modifying the signal. The analog signal is sent from the first location through the electromagnetic path, and the signal is modified by the properties of the electromagnetic path. The method further comprises the step of receiving a modified signal at the second location and comparing the known reference to the modified signal.

Description

    FEDERAL SPONSORSHIP
  • This invention was made with government support under Contract No. DE-FC26-01NT41229 awarded by the U.S. Department of Energy. The government has certain rights in the invention.
  • BACKGROUND OF THE INVENTION
  • The present invention relates to the field of system analysis and diagnostics, particularly in a downhole network along a drill string used in oil and gas exploration, or along the casings and other equipment used in oil and gas production.
  • Many downhole systems have been developed which transmit data from one point to another, and the properties of the network may influence the performance of the system. Therefore, it may be useful to have tools that can test the properties of a network. Several apparatuses and methods have been developed to analyze the properties of a network.
  • U.S. Pat. No. 3,978,282 discloses an apparatus and method for measuring the characteristics of a network in which a substantially non-interfering, low-intensity sweeping test signal is transmitted along a network to be tested. A reference signal is transmitted along with a test signal for synchronizing the operation of tracking means.
  • U.S. Pat. No. 5,307,284 discloses a vector network analyzer, which utilizes a single voltage controlled oscillator to produce a sweep frequency over time, which is supplied to a device under test. The return signal from the device under test is delayed and mixed with the original signal to produce an intermediate frequency signal that is digitized and the data manipulated by a computer to measure the reflection coefficient or transmission coefficient of the device under test.
  • U.S. Pat. No. 4,739,325 discloses an apparatus and method for down-hole EM telemetry while drilling which utilizes a down-hole microprocessor unit and a surface data processing unit (computer) each of which continuously monitors, probes and sweeps the frequency spectrum with EM signals to determine an optimum frequency for signal transmission between the respective units via either the drill string, the surrounding strata, or both
  • U.S. patent application Ser. No. 10/708,775 filed Mar. 24, 2004 in the name of Hall, et al. discloses a method and apparatus for testing electromagnetic connectivity in a drill string. The method comprises transmitting a test signal along a transmission path in a drill string; receiving a reflection of the test signal; and determining from the reflection whether there is an interruption in the electromagnetic connectivity in the transmission path. In general, the apparatus comprises a signal generator for generating a test signal into the drill string; a receiver for receiving the reflection of the test signal; and means for determining from the reflection whether there is an interruption in the electromagnetic connectivity in the transmission path.
  • BRIEF SUMMARY OF THE INVENTION
  • A method for identifying properties of a downhole electromagnetic network in a downhole tool string, comprising the step of providing an electromagnetic path intermediate a first location and a second location on the electromagnetic network. The method further comprises the step of providing a receiver at the second location. The receiver is integrated into the electromagnetic network and comprises a known reference. The analog signal comprises a set amplitude, a set range of frequencies, and a set rate of change between the frequencies. The method further comprises the steps of sending the analog signal, and passively modifying the signal. The analog signal is sent from the first location through the electromagnetic path, and the signal is modified by the properties of the electromagnetic path. The method further comprises the step of receiving a modified signal at the second location and comparing the known reference to the modified signal. The differences between the known reference and the modified signal reveal the properties of the electromagnetic path.
  • The electromagnetic network may comprise inductive couplers. The properties may be frequency response of the network, signal attenuation, or impedance of circuitry along the electromagnetic path of the network. The inductive couplers may affect the impedance of the network or signal attenuation at certain frequencies. Typically, the first location is downhole relative to the second location. Alternatively, the first location may be uphole relative to the second location. The range of frequencies may be between 0 Hz and 10 MHz.
  • The phrases “uphole relative to” and “downhole relative to” are herein intended to refer to the positioning of one object with respect to another. Generally, something uphole relative to an object is closer to the opening of the well bore than that object. Something downhole relative to an object is farther from the opening of the well bore, or closer to the bottom of the well bore, than that object.
  • The analog signal may be transmitted by a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment. The analog signal may be received by a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment.
  • The step of comparing the known reference to the modified signal may comprise steps selected from the group consisting of analyzing the spectrum of the modified signal, performing logical computations using the modified signal, and comparing expected values to actual values.
  • Preferably, the method further comprises the step of sending data representing the modified signal over the electromagnetic network. The known reference may be compared to the modified signal by a facilitator such as a computer, surface equipment, or a network node. Alternatively, the receiver may compare the known reference to the modified signal to reveal the properties of the network
  • Disclosed is a system for testing properties of an electromagnetic network in a segmented downhole tool string which comprises a transmitter and a receiver. The transmitter is in communication with the electromagnetic network and is adapted to transmit a varying analog signal along the network. The receiver is in communication with the electromagnetic network and is adapted to receive the varying analog signal. Differences between the transmitted analog signal and the received signal reveal the properties of the network.
  • Preferably, the system further comprises a facilitator adapted to receive data representing the transmitted analog signal and facilitate comparing the transmitted analog signal and the received signal to reveal the properties of the network. The facilitator may be a computer, surface equipment, or a network node. Alternatively, the receiver may be adapted to compare the transmitted analog signal and the received signal to reveal the properties of the network. Knowing the properties of the network may help reveal manufacturer defects, electrical shorts, or useful transmission bands for the network.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a block diagram of a system for testing properties of an electromagnetic network comprising multiple downhole nodes.
  • FIG. 2 is a block diagram of a system for testing properties of an electromagnetic network comprising a facilitator.
  • FIG. 3 is a block diagram of a system for testing properties of an electromagnetic network comprising only a transmitter and a receiver.
  • FIG. 4 is a block diagram of a system for testing properties of an electromagnetic network the first location being uphole relative to the second location.
  • FIG. 5 is a flowchart of a method for testing properties of an electromagnetic network.
  • FIG. 6 is a flowchart of a more detailed method for testing properties of an electromagnetic network.
  • DETAILED DESCRIPTION OF THE INVENTION AND THE PREFERRED EMBODIMENT
  • FIG. 1 is the preferred embodiment of a system 76 for testing properties of an electromagnetic network 39. The network 39 is integrated into a segmented downhole tool string 40 and an analysis instrument 59 is in communication with the network 39. The analysis instrument 59 may be a computer. Typically, the electromagnetic network 39 comprises inductive couplers 80. The present invention may be able to compute the complex impedance of the inductive couplers 80, and may aide in utilizing the pass band of the network 39 in the most efficient way. A system of inductive couplers that may be used for transmitting data in a downhole network is disclosed in U.S. Pat. No. 6,670,880 to Hall, et al., entitled “Downhole Data Transmission System,” and is herein incorporated by reference. A downhole network which may be tested in accordance with the present invention is disclosed in U.S. patent Ser. No. 10/710,790 to Hall, et al., entitled “Distributed Downhole Network,” and is herein incorporated by reference. Each downhole node 61 may be adapted to transmit a varying analog signal 31 to an adjacent device 61, 59 located uphole relative to the downhole node 61. In general, the varying analog signal 31 may be transmitted directly from one device 61, 59 to another. Data 67 representing the varying analog signal 31 may be sent from each downhole node 61 receiving a varying analog signal 31 to the analysis instrument 59 which may be adapted to facilitate comparing the transmitted analog signal 31 to a received signal 31 to reveal the properties of the network 39. The determinable properties may be frequency response of the network 39, signal attenuation, or impedance of network circuitry.
  • One embodiment of the present invention may be that the analysis instrument 59 sends a varying analog signal 31 to the downhole node 61 closest to the opening of the well-bore over a portion of the network 39. The downhole node 61 may then send data representing the varying analog signal 31 back over that same portion of the network 39 to the analysis instrument 59, and the analysis instrument 59 may then compare the transmitted analog signal 31 to the signal 31 received by the node 61 in order to compute the properties of the portion of the network. Preferably the transmission of the varying analog signal 31 and the data occur at different times, as the varying analog signal 31 may operate over the same range of frequencies as the network 39, and may interfere with the transmission of data.
  • Another embodiment of the present invention may be that the analysis instrument 59 sends a request for a varying analog signal 31 to an adjacent downhole node 61. The downhole node 61 may then send a varying analog signal 31 to the analysis instrument 59, and the analysis instrument 59 may then receive the varying analog signal 31 and compare the transmitted analog signal 31 to the signal 31 received in order to compute the properties of the network 39. The analysis instrument 59 may have prior knowledge of the varying analog signal 31, which may be compared the signal 31 received.
  • In general, the response of the network 39 to the varying analog signal 31 is considered to be the frequency response of the network 39. The frequency response of the network 39 may be used to compute the characteristic impedance of the portion of the network 39 under test. The characteristic impedance of the network 39 may be compared to calculated values for the characteristic impedance, and may reveal manufacturer defects or design errors. The characteristic impedance of circuitry may be used to find an area of higher or lower impedance, which may indicate a poor electro-mechanical connection such as a poor pipe joint, which may have higher impedance, or a shorted wire, which may have lower impedance. Signal attenuation may be used to show a pass-band of certain frequencies, which may be useful in computing what frequencies are best used for the network 39. Knowledge of the pass band may also be used to determine what circuitry is needed to change the pass band, either to shift the range of frequencies passed by the pass band or to change the shape of the pass band. The impedance of network circuitry may be useful to determine where there are impedance mismatches such that power losses may occur, and where network signal reflections may be occurring. This may be advantageous as reflection of network signals may cause distortion or inter-symbol interference of network communication.
  • FIG. 2 shows an embodiment of a system for testing properties of an electromagnetic network 39 in a segmented downhole tool string 40. A transmitter 37 may comprise a signal generator 30 for transmitting a varying analog signal 31 along an electromagnetic network 39. The transmitter 37 may further comprise a switch 34, and a network interface modem (NIM) 35. The switch may be used to switch between the functions of testing the properties of the network 39 and communicating via the network 39. The NIM 35 may be used for communicating via the network 39.
  • A receiver 38 may be uphole relative to the transmitter 37, and may comprise a signal receiver 32 for receiving the varying analog signal 31. The receiver 38 may further comprise a switch 34, and a NIM 35. The transmitter 37 and the receiver 38 may be selected from the group consisting of network nodes, spectrum analyzers, repeaters, tools, drilling assemblies, computers, and surface equipment.
  • The receiver 38 may also be in communication with a facilitator 50 via the network 39. Data 48 representing the varying analog signal 31 may be sent to the facilitator 50. The facilitator 50 may comprise a NIM 35 and a processor 33 for facilitating determination of the differences between the transmitted varying analog signal 31 and the received signal. The differences between the transmitted varying analog signal 31 and the received signal may help determine the properties of the network 39. The facilitator 50 may be a computer. Alternatively, the facilitator 50 may be a network node, a tool, a drilling assembly, or surface equipment. A facilitator may comprise a computer program or algorithm which may determine the differences between the transmitted varying analog signal 31 and the received signal and compute the properties of the network. Alternatively, a facilitator may comprise electronic components or circuit elements such as an FPGA or integrated circuits which may perform the necessary computations. A spectrum analyzer, which is commonly known in the art, may also be used as a facilitator to receive the signal 31 and perform the computations. An apparatus which comprises such computer programs, algorithms, electronic components or circuit elements for performing the computations to determine differences between the transmitted varying analog signal 31 and the received signal and the properties of the network may be considered a facilitator. It may be difficult to have the capability of computing the properties downhole, and it may be desirable to send the data 48 to a facilitator 50 to perform the computations on large quantities of data 48. The facilitator 50 may perform some or all of the computations or analysis necessary to compute the properties of the network 39. An analysis of a property of the entire network may be desired, and each receiver 38 may determine the properties of the portion of the network 39 through which the varying analog signal 31 was transmitted. Data 48 may then be collected from a number of receivers 38, and the facilitator 50 may compare the data 48 to find correlations.
  • FIG. 3 shows functional block diagram of an embodiment of a system for testing properties of an electromagnetic network 39 integrated into a tool string 40. A first location 78 may be a transmitter 37 which may comprise a signal generator 30 for transmitting a varying analog signal 31 along a network 39, a switch 34 for switching between the functions of testing the network 39 and communicating via the network 39, a NIM 35, and other devices 36. A switch 34 may be necessary as the varying analog signal 31 may violate network protocol, and may not be transmittable through a NIM 35. Alternatively, the signal generator 30 may be always connected to the network 39, and the transmitter 37 may simply govern when the signal generator 30 operates. The other devices 36 may be a router, local node circuitry, a tool port, or data acquisition devices. The second location 79 may be a receiver 38 which may comprise a signal receiver 32 for receiving the varying analog signal 31, a switch 34 for switching between the functions of testing the network 39 and communicating via the network 39, a NIM 35, and other devices 36. The receiver 38 may further comprise a processor 33 for computing the properties of the network 39. The processor may determine the properties of the network 39 independent of a facilitator 50 as seen previously.
  • FIG. 4 shows an embodiment of a system for testing properties of an electromagnetic network 39. A transmitter 37 may be at a first location 78 and may send a varying analog signal 31 to a receiver 38 at a second location 79 downhole relative to the transmitter 37. The receiver 38 may comprise a processor 33 for computing properties of the network 39. As the system may communicate independent of the network, the switch 34 and the NIM 35 seen previously may not be necessary. The signal generator 30 and the signal receiver 32 may be connected directly to the network 39.
  • FIG. 5 shows a flowchart of an embodiment of a method 51 for testing properties of a network 39 and references FIG. 3. The method 51 comprises the step of providing 41 an electromagnetic path 83 intermediate a first location 78 and a second location 79 on the electromagnetic network 39. The first location 78 may be a transmitter 37. The first location 78 is preferably downhole relative to the second location 79. Alternatively, the first location 78 may be uphole relative to the second location 79.
  • The method 51 comprises the step of providing a receiver 38 at the second location 79 integrated into the electromagnetic network 39 and comprising a known reference. The receiver 38 may be disposed in a recess in a downhole tool string 40, and may not be easily moved. The known reference comprises a set amplitude, a set range of frequencies, and a set rate of change between the frequencies. For example, the known reference may be a digital representation of the analog signal 31 before transmission. The reference may have a set amplitude, a set range of frequencies, and a set rate of change between the frequencies which correspond to the analog signal 31. The known reference may be stored in memory (not shown) in the receiver 38. The known reference may alternatively be communicated digitally between the transmitter 37 and the receiver 38 over the network 39 before the signal 31 is transmitted. Typically, the range of frequencies is the range of frequencies used by the network 39. The range of frequencies may be between 0 Hz and 10 MHz. The actual range of frequencies may vary due to the sampling rate of the signal receiver 32, since the sampling rate may need to be at least twice the highest frequency in the range of frequencies. The sampling rate of the signal receiver 32 may be increased by providing faster hardware which may sample the signal 31 at a faster rate. The range of frequencies may alternatively be selected 0 Hz and 50 Mhz, and such a range may provide information about the properties of the network 39 for higher frequencies. In other embodiments the range of frequencies may be between 0 Hz and 100 MHz.
  • The method 51 also comprises the steps of sending 43 the analog signal from the first location 78 through the electromagnetic path 83 and modifying 44 the varying analog signal 31. The frequency of the varying analog signal 31 may be varied by performing a frequency sweep within the range of frequencies according to the set rate of change. The signal 31 is modified passively by the properties of the electromagnetic path 83 as the varying analog signal 31 is transmitted from the first location 78 to the second location 79. The varying analog signal 31 may be transmitted by a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment. The method further comprises the step receiving 53 a modified signal at the second location 79. The varying analog signal 31 may be received by the receiver, which may be a network node, a repeater, a tool, a drilling assembly, a computer, or surface equipment.
  • The method 51 further comprises the step comparing 45 the known reference to the modified signal 31. The known reference may be pre-programmed or otherwise stored in the receiver 38 and may therefore be compared to the modified signal 31. The differences between the known reference and the modified signal reveal the properties of the electromagnetic path 83. The properties may be frequency response of the network 39, signal attenuation, or impedance of network circuitry. The receiver 38 may compare the signals 31. Generally, the range of frequencies and the rate of change between the frequencies is used to correlate the modified signal 31 received by the receiver 38 with the known reference. This correlation may show the frequency response of the network 39, which may be how the varying analog signal 31 is altered by the portion of the network 39 over which it travels. This correlation may be made without the use of a transmitted reference signal, as the receiving device 38 may perform a spectrum analysis, or computations such as Laplace transforms or Fourier transforms, as will be discussed shortly.
  • FIG. 6 shows a flowchart of an embodiment of a method 52 for testing properties of a network 39, and references FIG. 2. This method 52 comprises the steps of providing 41 an electromagnetic path 83, providing 42 a receiver 38 at the second location 79 comprising a known reference, sending 43 the analog signal 31, modifying 44 the analog signal, and receiving 53 the signal 31 as disclosed in the method 51 shown in FIG. 5 and discussed previously. This method 52 further comprises the step of transmitting 77 data 48 representing the varying analog signal 31 over the electromagnetic network 39. Typically, the data 48 is transmitted to a facilitator 50.
  • The method 52 also comprises the step of comparing 45 the known reference to the modified signal 31. The differences between the known reference and the modified signal reveal the properties of the electromagnetic path 83. The properties may be frequency response of the network 39, signal attenuation, or impedance of network circuitry. Preferably, the properties are computed by a facilitator 50 which may be a computer, surface equipment, or a network node. Alternatively, the receiver 38 may compute the properties of the network, as previously discussed.
  • The step of comparing 45 the known reference to the modified signal 31 may comprise one or more of steps 46, 47, 49. The step of analyzing 46 the spectrum of the varying analog signal 31 may show the frequency response of the network 39. The step of performing 47 logical computations using the varying analog signal 31 may include the use of Fourier transforms, Laplace transforms, or FFT's. This may show the complex impedances of the network 39, and may be used to adjust or tune the circuit to certain desired characteristics, such as a specific pass band or impedance matching. Once the complex impedances of the network 39 are known, additional circuitry may be added to adjust or tune the pass-band of the network. The step of computing 45 the properties of the network 39 may further comprise the step of comparing 49 expected values to actual values of the varying analog signal 31. An example of how expected values may be compared to actual values is that the complex impedances previously discussed may be compared to the complex impedances calculated from known parameters. A difference may indicate a short in a wire, a damaged component, or a poorly matched connection in a network.
  • Whereas the present invention has been described in particular relation to the drawings attached hereto, it should be understood that other and further modifications apart from those shown or suggested herein, may be made within the scope and spirit of the present invention.

Claims (21)

1. A method for identifying properties of a downhole electromagnetic network in a downhole tool string, comprising the steps of:
providing an electromagnetic path intermediate a first location and a second location on the electromagnetic network;
providing a receiver integrated into the electromagnetic network at the second location and comprising a known reference;
the reference comprising a set amplitude, a set range of frequencies, and a set rate of change between the frequencies;
sending an analog signal from the first location through the electromagnetic path;
passively modifying the signal by the properties of the electromagnetic path;
receiving a modified signal at the second location; and
comparing the known reference to the modified signal;
wherein the differences between the known reference and the modified signal reveal the properties of the electromagnetic path.
2. The method of claim 1 wherein the electromagnetic network comprises inductive couplers.
3. The method of claim 1 wherein the properties are selected from the group consisting of frequency response of the network, signal attenuation, and impedance of network circuitry.
4. The method of claim 1 wherein the first location is downhole relative to the second location.
5. The method of claim 1 wherein the range of frequencies is between 0 Hz and 50 MHz.
6. The method of claim 5 wherein the range of frequencies is between 0 Hz and 10 MHz.
7. The method of claim 1 wherein the analog signal is transmitted by a transmitter selected from the group consisting of network nodes, repeaters, tools, drilling assemblies, computers, and surface equipment.
8. The method of claim 1 wherein the receiver is selected from the group consisting of network nodes, spectrum analyzers, repeaters, tools, drilling assemblies, computers, and surface equipment.
9. The method of claim 1 wherein the step of comparing the known reference to the modified signal comprises steps selected from the group consisting of analyzing the spectrum of the modified signal, performing logical computations using the modified signal, and comparing expected values to actual values.
10. The method of claim 1 wherein the known reference is compared to the modified signal by the receiver.
11. The method of claim 1 wherein the method further comprises the step of sending data representing the modified signal over the electromagnetic network.
12. The method of claim 11 wherein the known reference is compared to the modified signal by a facilitator selected from the group consisting of computers, surface equipment, and network nodes.
13. A system for testing properties of an electromagnetic network in a segmented downhole tool string comprising:
a transmitter in communication with an electromagnetic path with the network and adapted to transmit a varying analog signal along the electromagnetic path;
a receiver in communication with the electromagnetic path and adapted to receive the varying analog signal;
wherein differences between the analog signal and the received signal reveal the properties of the network.
14. The system of claim 13 wherein the electromagnetic network comprises inductive couplers.
15. The system of claim 13 wherein the properties are selected from the group consisting of frequency response of the network, signal attenuation, and impedance of network circuitry.
16. The system of claim 13 wherein the transmitter is selected from the group consisting of network nodes, repeaters, tools, drilling assemblies, computers, and surface equipment.
17. The system of claim 13 wherein the receiver is selected from the group consisting of network nodes, spectrum analyzers, repeaters, tools, drilling assemblies, computers, and surface equipment.
18. The system of claim 13 wherein the transmitter and the receiver comprise a switch for switching between the function of testing properties of the network and the function of communicating on the network.
19. The system of claim 13 wherein the receiver is adapted to determine the differences between the analog signal and the received signal.
20. The system of claim 13 wherein the system further comprises a facilitator adapted to receive data representing the varying analog signal and facilitate determining the differences between the analog signal and the received signal.
21. The system of claim 20 wherein the facilitator is selected from the group consisting of computers, surface equipment, and network nodes.
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Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070189165A1 (en) * 2006-02-16 2007-08-16 Intelliserv, Inc. Physically Segmented Logical Token Network
US20090146836A1 (en) * 2007-12-11 2009-06-11 Schlumberger Technology Corporation Methods and apparatus to configure drill string communications
US20140153369A1 (en) * 2012-11-30 2014-06-05 Xact Downhole Telemetry, Inc. Downhole low rate linear repeater relay network timing system and method
WO2015172251A1 (en) * 2014-05-14 2015-11-19 Evolution Engineering Inc. Apparatuses and methods for evaluating systems used in electromagnetic telemetry transmissions
US10103846B2 (en) 2013-03-15 2018-10-16 Xact Downhole Telemetry, Inc. Robust telemetry repeater network system and method
US10901108B2 (en) * 2017-11-17 2021-01-26 Evolution Engineering Inc. Method and apparatus for placing receiver electrodes for EM telemetry transmissions

Families Citing this family (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AU2007292254B2 (en) 2006-09-08 2013-09-26 Chevron U.S.A., Inc. A telemetry apparatus and method for monitoring a borehole
US7863907B2 (en) * 2007-02-06 2011-01-04 Chevron U.S.A. Inc. Temperature and pressure transducer
US7810993B2 (en) * 2007-02-06 2010-10-12 Chevron U.S.A. Inc. Temperature sensor having a rotational response to the environment
US8106791B2 (en) * 2007-04-13 2012-01-31 Chevron U.S.A. Inc. System and method for receiving and decoding electromagnetic transmissions within a well
US7841234B2 (en) * 2007-07-30 2010-11-30 Chevron U.S.A. Inc. System and method for sensing pressure using an inductive element
US7636052B2 (en) 2007-12-21 2009-12-22 Chevron U.S.A. Inc. Apparatus and method for monitoring acoustic energy in a borehole
US9547104B2 (en) * 2007-09-04 2017-01-17 Chevron U.S.A. Inc. Downhole sensor interrogation employing coaxial cable
US8353677B2 (en) 2009-10-05 2013-01-15 Chevron U.S.A. Inc. System and method for sensing a liquid level
US8575936B2 (en) 2009-11-30 2013-11-05 Chevron U.S.A. Inc. Packer fluid and system and method for remote sensing
US10488286B2 (en) * 2009-11-30 2019-11-26 Chevron U.S.A. Inc. System and method for measurement incorporating a crystal oscillator
US9250339B2 (en) 2012-03-27 2016-02-02 Baker Hughes Incorporated System and method to transport data from a downhole tool to the surface
AU2015409263B2 (en) * 2015-09-16 2021-02-11 Halliburton Energy Services, Inc. Dual frequency elements for wellbore communications
US20220186613A1 (en) * 2019-06-14 2022-06-16 Halliburton Energy Services, Inc. Acoustic channel identification in wellbore communication devices

Citations (61)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2414718A (en) * 1944-04-26 1947-01-21 Niels C Christensen Gas washer
US3518808A (en) * 1968-10-04 1970-07-07 Oliver Machinery Co Packaging machine article release apparatus
US3978282A (en) * 1971-02-04 1976-08-31 Avantek, Inc. Apparatus and method for measuring the transmission characteristics of a network
US4739325A (en) * 1982-09-30 1988-04-19 Macleod Laboratories, Inc. Apparatus and method for down-hole EM telemetry while drilling
US4788544A (en) * 1987-01-08 1988-11-29 Hughes Tool Company - Usa Well bore data transmission system
US5012015A (en) * 1988-03-09 1991-04-30 Daiei Chemical Co., Ltd. Process for producing 2,4-dichloro-3-alkyl-6-nitrophenol
US6252518B1 (en) * 1998-11-17 2001-06-26 Schlumberger Technology Corporation Communications systems in a well
US6307284B1 (en) * 1998-09-16 2001-10-23 Canon Kabushiki Kaisha Positioning apparatus, information recording/reproducing apparatus, and inspection apparatus
US6392317B1 (en) * 2000-08-22 2002-05-21 David R. Hall Annular wire harness for use in drill pipe
US6670880B1 (en) * 2000-07-19 2003-12-30 Novatek Engineering, Inc. Downhole data transmission system
US6688396B2 (en) * 2000-11-10 2004-02-10 Baker Hughes Incorporated Integrated modular connector in a drill pipe
US20040039466A1 (en) * 2002-05-24 2004-02-26 Baker Hughes Incorporated Method and apparatus for high speed data dumping and communication for a down hole tool
US6717501B2 (en) * 2000-07-19 2004-04-06 Novatek Engineering, Inc. Downhole data transmission system
US20040113808A1 (en) * 2002-12-10 2004-06-17 Hall David R. Signal connection for a downhole tool string
US20040146492A1 (en) * 1996-02-08 2004-07-29 Patrick Hwu Methods and compositions for transforming dendritic cells and activating T cells
US20040150532A1 (en) * 2003-01-31 2004-08-05 Hall David R. Method and apparatus for transmitting and receiving data to and from a downhole tool
US20040164833A1 (en) * 2000-07-19 2004-08-26 Hall David R. Inductive Coupler for Downhole Components and Method for Making Same
US20040164838A1 (en) * 2000-07-19 2004-08-26 Hall David R. Element for Use in an Inductive Coupler for Downhole Drilling Components
US6799632B2 (en) * 2002-08-05 2004-10-05 Intelliserv, Inc. Expandable metal liner for downhole components
US20040216847A1 (en) * 2003-04-30 2004-11-04 Hall David R. Portable architectural tool
US6821147B1 (en) * 2003-08-14 2004-11-23 Intelliserv, Inc. Internal coaxial cable seal system
US20040244916A1 (en) * 2003-06-03 2004-12-09 Hall David R. Filler for architectural panel joints and tool
US20040248142A1 (en) * 2002-09-13 2004-12-09 Otsuka Pharmaceutical Co., Ltd. Method for detecting hepatocellular carcinoma
US20040244964A1 (en) * 2003-06-09 2004-12-09 Hall David R. Electrical transmission line diametrical retention mechanism
US6830487B2 (en) * 2002-07-19 2004-12-14 Adc Telecommunications, Inc. Pin jack for a digital switching cross-connect module
US20050001738A1 (en) * 2003-07-02 2005-01-06 Hall David R. Transmission element for downhole drilling components
US20050001735A1 (en) * 2003-07-02 2005-01-06 Hall David R. Link module for a downhole drilling network
US20050001736A1 (en) * 2003-07-02 2005-01-06 Hall David R. Clamp to retain an electrical transmission line in a passageway
US20050038507A1 (en) * 2001-05-14 2005-02-17 Alferness Clifton A. Mitral valve therapy device, system and method
US20050035876A1 (en) * 2003-08-13 2005-02-17 Hall David R. Method for Triggering an Action
US20050048339A1 (en) * 2002-07-09 2005-03-03 Fly Gerald W. Supersonic vapor compression and heat rejection cycle
US20050045590A1 (en) * 2003-05-28 2005-03-03 Hall Lindsey H. FRAM capacitor stack clean
US20050046586A1 (en) * 2002-12-10 2005-03-03 Hall David R. Swivel Assembly
US20050070144A1 (en) * 2003-01-31 2005-03-31 Hall David R. Internal coaxial cable seal system
US20050082092A1 (en) * 2002-08-05 2005-04-21 Hall David R. Apparatus in a Drill String
US20050087159A1 (en) * 2003-10-28 2005-04-28 Caterpillar, Inc. Engine valve actuation system
US6888473B1 (en) * 2000-07-20 2005-05-03 Intelliserv, Inc. Repeatable reference for positioning sensors and transducers in drill pipe
US20050093296A1 (en) * 2003-10-31 2005-05-05 Hall David R. An Upset Downhole Component
US20050092499A1 (en) * 2003-10-31 2005-05-05 Hall David R. Improved drill string transmission line
US20050095827A1 (en) * 2003-11-05 2005-05-05 Hall David R. An internal coaxial cable electrical connector for use in downhole tools
US20050115717A1 (en) * 2003-11-29 2005-06-02 Hall David R. Improved Downhole Tool Liner
US6918098B2 (en) * 2002-07-16 2005-07-12 Hewlett-Packard Development Company, L.P. Random code generation using genetic algorithms
US20050150663A1 (en) * 2004-01-09 2005-07-14 Airbus France Fire extinguishing device
US20050173128A1 (en) * 2004-02-10 2005-08-11 Hall David R. Apparatus and Method for Routing a Transmission Line through a Downhole Tool
US6929498B2 (en) * 2003-09-19 2005-08-16 Hon Hai Precision Ind. Co., Ltd. Electrical connector with mounting member and method of making same
US20050181215A1 (en) * 2004-02-02 2005-08-18 Tamura Kaken Corporation Thermosetting resin compositions and film articles
US6945802B2 (en) * 2003-11-28 2005-09-20 Intelliserv, Inc. Seal for coaxial cable in downhole tools
US6950034B2 (en) * 2003-08-29 2005-09-27 Schlumberger Technology Corporation Method and apparatus for performing diagnostics on a downhole communication system
US20050212530A1 (en) * 2004-03-24 2005-09-29 Hall David R Method and Apparatus for Testing Electromagnetic Connectivity in a Drill String
US20050238180A1 (en) * 2004-04-27 2005-10-27 Jinsuan Chen All in one acoustic wireless headphones
US20050279608A1 (en) * 2004-06-22 2005-12-22 Konstant Products, Inc. Storage carts
US20050285754A1 (en) * 2004-06-28 2005-12-29 Hall David R Downhole transmission system
US20050284882A1 (en) * 2004-06-28 2005-12-29 Belongia Brett M Constant temperature disposable reservoir for use with volumetric fluid dispensing apparatus
US20050285751A1 (en) * 2004-06-28 2005-12-29 Hall David R Downhole Drilling Network Using Burst Modulation Techniques
US20050285752A1 (en) * 2004-06-28 2005-12-29 Hall David R Down hole transmission system
US20050285645A1 (en) * 2004-06-28 2005-12-29 Hall David R Apparatus and method for compensating for clock drift in downhole drilling components
US20050285706A1 (en) * 2004-06-28 2005-12-29 Hall David R Downhole transmission system comprising a coaxial capacitor
US20050285705A1 (en) * 2004-06-28 2005-12-29 Hall David R Element of an inductive coupler
US20050284663A1 (en) * 2002-12-10 2005-12-29 Hall David R Assessing down-hole drilling conditions
US20050284859A1 (en) * 2004-06-25 2005-12-29 Ngk Spark Plug Co., Ltd. Method for producing a ceramic heater, ceramic heater produced by the production method, and glow plug comprising the ceramic heater
US7040415B2 (en) * 2003-10-22 2006-05-09 Schlumberger Technology Corporation Downhole telemetry system and method

Family Cites Families (45)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2414719A (en) 1942-04-25 1947-01-21 Stanolind Oil & Gas Co Transmission system
US3518608A (en) 1968-10-28 1970-06-30 Shell Oil Co Telemetry drill pipe with thread electrode
US4297880A (en) 1980-02-05 1981-11-03 General Electric Company Downhole pressure measurements of drilling mud
CA2030272C (en) 1989-11-24 1995-06-27 David R. Brunfeldt Vector network analyzer
US6012015A (en) 1995-02-09 2000-01-04 Baker Hughes Incorporated Control model for production wells
US5887657A (en) 1995-02-09 1999-03-30 Baker Hughes Incorporated Pressure test method for permanent downhole wells and apparatus therefore
US6787758B2 (en) 2001-02-06 2004-09-07 Baker Hughes Incorporated Wellbores utilizing fiber optic-based sensors and operating devices
US6415877B1 (en) 1998-07-15 2002-07-09 Deep Vision Llc Subsea wellbore drilling system for reducing bottom hole pressure
US7174975B2 (en) 1998-07-15 2007-02-13 Baker Hughes Incorporated Control systems and methods for active controlled bottomhole pressure systems
US7096975B2 (en) 1998-07-15 2006-08-29 Baker Hughes Incorporated Modular design for downhole ECD-management devices and related methods
US7270185B2 (en) 1998-07-15 2007-09-18 Baker Hughes Incorporated Drilling system and method for controlling equivalent circulating density during drilling of wellbores
US7806203B2 (en) 1998-07-15 2010-10-05 Baker Hughes Incorporated Active controlled bottomhole pressure system and method with continuous circulation system
US6230557B1 (en) 1998-08-04 2001-05-15 Schlumberger Technology Corporation Formation pressure measurement while drilling utilizing a non-rotating sleeve
US6896075B2 (en) 2002-10-11 2005-05-24 Weatherford/Lamb, Inc. Apparatus and methods for drilling with casing
US6813962B2 (en) 2000-03-07 2004-11-09 Weatherford/Lamb, Inc. Distributed sound speed measurements for multiphase flow measurement
US7253745B2 (en) 2000-07-19 2007-08-07 Intelliserv, Inc. Corrosion-resistant downhole transmission system
US6992554B2 (en) 2000-07-19 2006-01-31 Intelliserv, Inc. Data transmission element for downhole drilling components
US6415231B1 (en) 2000-08-14 2002-07-02 Joel J. Hebert Method and apparatus for planning and performing a pressure survey
US20020112888A1 (en) 2000-12-18 2002-08-22 Christian Leuchtenberg Drilling system and method
US6866306B2 (en) 2001-03-23 2005-03-15 Schlumberger Technology Corporation Low-loss inductive couplers for use in wired pipe strings
US6659197B2 (en) 2001-08-07 2003-12-09 Schlumberger Technology Corporation Method for determining drilling fluid properties downhole during wellbore drilling
CA2459723C (en) 2001-09-20 2008-02-19 Baker Hughes Incorporated Active controlled bottomhole pressure system and method
US8955619B2 (en) 2002-05-28 2015-02-17 Weatherford/Lamb, Inc. Managed pressure drilling
US7062959B2 (en) 2002-08-15 2006-06-20 Schlumberger Technology Corporation Method and apparatus for determining downhole pressures during a drilling operation
US6982384B2 (en) 2003-09-25 2006-01-03 Intelliserv, Inc. Load-resistant coaxial transmission line
US6830467B2 (en) 2003-01-31 2004-12-14 Intelliserv, Inc. Electrical transmission line diametrical retainer
US6986282B2 (en) 2003-02-18 2006-01-17 Schlumberger Technology Corporation Method and apparatus for determining downhole pressures during a drilling operation
US7172037B2 (en) 2003-03-31 2007-02-06 Baker Hughes Incorporated Real-time drilling optimization based on MWD dynamic measurements
US7082821B2 (en) 2003-04-15 2006-08-01 Halliburton Energy Services, Inc. Method and apparatus for detecting torsional vibration with a downhole pressure sensor
GB2400906B (en) 2003-04-24 2006-09-20 Sensor Highway Ltd Distributed optical fibre measurements
US6929493B2 (en) 2003-05-06 2005-08-16 Intelliserv, Inc. Electrical contact for downhole drilling networks
US7528736B2 (en) 2003-05-06 2009-05-05 Intelliserv International Holding Loaded transducer for downhole drilling components
US7053788B2 (en) 2003-06-03 2006-05-30 Intelliserv, Inc. Transducer for downhole drilling components
US6913093B2 (en) 2003-05-06 2005-07-05 Intelliserv, Inc. Loaded transducer for downhole drilling components
US7296624B2 (en) 2003-05-21 2007-11-20 Schlumberger Technology Corporation Pressure control apparatus and method
US8284075B2 (en) 2003-06-13 2012-10-09 Baker Hughes Incorporated Apparatus and methods for self-powered communication and sensor network
US7193526B2 (en) 2003-07-02 2007-03-20 Intelliserv, Inc. Downhole tool
US7178607B2 (en) 2003-07-25 2007-02-20 Schlumberger Technology Corporation While drilling system and method
US6991035B2 (en) 2003-09-02 2006-01-31 Intelliserv, Inc. Drilling jar for use in a downhole network
US7019665B2 (en) 2003-09-02 2006-03-28 Intelliserv, Inc. Polished downhole transducer having improved signal coupling
US7114562B2 (en) 2003-11-24 2006-10-03 Schlumberger Technology Corporation Apparatus and method for acquiring information while drilling
BRPI0508448B1 (en) 2004-03-04 2017-12-26 Halliburton Energy Services, Inc. METHOD FOR ANALYSIS OF ONE OR MORE WELL PROPERTIES AND MEASUREMENT SYSTEM DURING DRILLING FOR COLLECTION AND ANALYSIS OF ONE OR MORE "
US9441476B2 (en) 2004-03-04 2016-09-13 Halliburton Energy Services, Inc. Multiple distributed pressure measurements
US20050284659A1 (en) 2004-06-28 2005-12-29 Hall David R Closed-loop drilling system using a high-speed communications network
US7198118B2 (en) 2004-06-28 2007-04-03 Intelliserv, Inc. Communication adapter for use with a drilling component

Patent Citations (68)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2414718A (en) * 1944-04-26 1947-01-21 Niels C Christensen Gas washer
US3518808A (en) * 1968-10-04 1970-07-07 Oliver Machinery Co Packaging machine article release apparatus
US3978282A (en) * 1971-02-04 1976-08-31 Avantek, Inc. Apparatus and method for measuring the transmission characteristics of a network
US4739325A (en) * 1982-09-30 1988-04-19 Macleod Laboratories, Inc. Apparatus and method for down-hole EM telemetry while drilling
US4788544A (en) * 1987-01-08 1988-11-29 Hughes Tool Company - Usa Well bore data transmission system
US5012015A (en) * 1988-03-09 1991-04-30 Daiei Chemical Co., Ltd. Process for producing 2,4-dichloro-3-alkyl-6-nitrophenol
US20040146492A1 (en) * 1996-02-08 2004-07-29 Patrick Hwu Methods and compositions for transforming dendritic cells and activating T cells
US6307284B1 (en) * 1998-09-16 2001-10-23 Canon Kabushiki Kaisha Positioning apparatus, information recording/reproducing apparatus, and inspection apparatus
US6252518B1 (en) * 1998-11-17 2001-06-26 Schlumberger Technology Corporation Communications systems in a well
US6670880B1 (en) * 2000-07-19 2003-12-30 Novatek Engineering, Inc. Downhole data transmission system
US6717501B2 (en) * 2000-07-19 2004-04-06 Novatek Engineering, Inc. Downhole data transmission system
US20040104797A1 (en) * 2000-07-19 2004-06-03 Hall David R. Downhole data transmission system
US7098767B2 (en) * 2000-07-19 2006-08-29 Intelliserv, Inc. Element for use in an inductive coupler for downhole drilling components
US20040164833A1 (en) * 2000-07-19 2004-08-26 Hall David R. Inductive Coupler for Downhole Components and Method for Making Same
US20040164838A1 (en) * 2000-07-19 2004-08-26 Hall David R. Element for Use in an Inductive Coupler for Downhole Drilling Components
US6888473B1 (en) * 2000-07-20 2005-05-03 Intelliserv, Inc. Repeatable reference for positioning sensors and transducers in drill pipe
US6392317B1 (en) * 2000-08-22 2002-05-21 David R. Hall Annular wire harness for use in drill pipe
US6688396B2 (en) * 2000-11-10 2004-02-10 Baker Hughes Incorporated Integrated modular connector in a drill pipe
US20050038507A1 (en) * 2001-05-14 2005-02-17 Alferness Clifton A. Mitral valve therapy device, system and method
US20040039466A1 (en) * 2002-05-24 2004-02-26 Baker Hughes Incorporated Method and apparatus for high speed data dumping and communication for a down hole tool
US20050048339A1 (en) * 2002-07-09 2005-03-03 Fly Gerald W. Supersonic vapor compression and heat rejection cycle
US6918098B2 (en) * 2002-07-16 2005-07-12 Hewlett-Packard Development Company, L.P. Random code generation using genetic algorithms
US6830487B2 (en) * 2002-07-19 2004-12-14 Adc Telecommunications, Inc. Pin jack for a digital switching cross-connect module
US20050039912A1 (en) * 2002-08-05 2005-02-24 Hall David R. Conformable Apparatus in a Drill String
US6799632B2 (en) * 2002-08-05 2004-10-05 Intelliserv, Inc. Expandable metal liner for downhole components
US20050082092A1 (en) * 2002-08-05 2005-04-21 Hall David R. Apparatus in a Drill String
US20040248142A1 (en) * 2002-09-13 2004-12-09 Otsuka Pharmaceutical Co., Ltd. Method for detecting hepatocellular carcinoma
US20050046586A1 (en) * 2002-12-10 2005-03-03 Hall David R. Swivel Assembly
US20040113808A1 (en) * 2002-12-10 2004-06-17 Hall David R. Signal connection for a downhole tool string
US20050284663A1 (en) * 2002-12-10 2005-12-29 Hall David R Assessing down-hole drilling conditions
US20040150532A1 (en) * 2003-01-31 2004-08-05 Hall David R. Method and apparatus for transmitting and receiving data to and from a downhole tool
US6844498B2 (en) * 2003-01-31 2005-01-18 Novatek Engineering Inc. Data transmission system for a downhole component
US20050145406A1 (en) * 2003-01-31 2005-07-07 Hall David R. Data Transmission System for a Downhole Component
US20050070144A1 (en) * 2003-01-31 2005-03-31 Hall David R. Internal coaxial cable seal system
US20040216847A1 (en) * 2003-04-30 2004-11-04 Hall David R. Portable architectural tool
US20050045590A1 (en) * 2003-05-28 2005-03-03 Hall Lindsey H. FRAM capacitor stack clean
US20040244916A1 (en) * 2003-06-03 2004-12-09 Hall David R. Filler for architectural panel joints and tool
US20040244964A1 (en) * 2003-06-09 2004-12-09 Hall David R. Electrical transmission line diametrical retention mechanism
US20050001735A1 (en) * 2003-07-02 2005-01-06 Hall David R. Link module for a downhole drilling network
US20050001738A1 (en) * 2003-07-02 2005-01-06 Hall David R. Transmission element for downhole drilling components
US20050001736A1 (en) * 2003-07-02 2005-01-06 Hall David R. Clamp to retain an electrical transmission line in a passageway
US20050035876A1 (en) * 2003-08-13 2005-02-17 Hall David R. Method for Triggering an Action
US20050035874A1 (en) * 2003-08-13 2005-02-17 Hall David R. Distributed Downhole Drilling Network
US6821147B1 (en) * 2003-08-14 2004-11-23 Intelliserv, Inc. Internal coaxial cable seal system
US6950034B2 (en) * 2003-08-29 2005-09-27 Schlumberger Technology Corporation Method and apparatus for performing diagnostics on a downhole communication system
US6929498B2 (en) * 2003-09-19 2005-08-16 Hon Hai Precision Ind. Co., Ltd. Electrical connector with mounting member and method of making same
US7040415B2 (en) * 2003-10-22 2006-05-09 Schlumberger Technology Corporation Downhole telemetry system and method
US20050087159A1 (en) * 2003-10-28 2005-04-28 Caterpillar, Inc. Engine valve actuation system
US20050092499A1 (en) * 2003-10-31 2005-05-05 Hall David R. Improved drill string transmission line
US20050093296A1 (en) * 2003-10-31 2005-05-05 Hall David R. An Upset Downhole Component
US20050095827A1 (en) * 2003-11-05 2005-05-05 Hall David R. An internal coaxial cable electrical connector for use in downhole tools
US6968611B2 (en) * 2003-11-05 2005-11-29 Intelliserv, Inc. Internal coaxial cable electrical connector for use in downhole tools
US6945802B2 (en) * 2003-11-28 2005-09-20 Intelliserv, Inc. Seal for coaxial cable in downhole tools
US20050115717A1 (en) * 2003-11-29 2005-06-02 Hall David R. Improved Downhole Tool Liner
US20050150663A1 (en) * 2004-01-09 2005-07-14 Airbus France Fire extinguishing device
US20050181215A1 (en) * 2004-02-02 2005-08-18 Tamura Kaken Corporation Thermosetting resin compositions and film articles
US20050173128A1 (en) * 2004-02-10 2005-08-11 Hall David R. Apparatus and Method for Routing a Transmission Line through a Downhole Tool
US20050212530A1 (en) * 2004-03-24 2005-09-29 Hall David R Method and Apparatus for Testing Electromagnetic Connectivity in a Drill String
US20050238180A1 (en) * 2004-04-27 2005-10-27 Jinsuan Chen All in one acoustic wireless headphones
US20050279608A1 (en) * 2004-06-22 2005-12-22 Konstant Products, Inc. Storage carts
US20050284859A1 (en) * 2004-06-25 2005-12-29 Ngk Spark Plug Co., Ltd. Method for producing a ceramic heater, ceramic heater produced by the production method, and glow plug comprising the ceramic heater
US20050285752A1 (en) * 2004-06-28 2005-12-29 Hall David R Down hole transmission system
US20050285706A1 (en) * 2004-06-28 2005-12-29 Hall David R Downhole transmission system comprising a coaxial capacitor
US20050285705A1 (en) * 2004-06-28 2005-12-29 Hall David R Element of an inductive coupler
US20050285645A1 (en) * 2004-06-28 2005-12-29 Hall David R Apparatus and method for compensating for clock drift in downhole drilling components
US20050285751A1 (en) * 2004-06-28 2005-12-29 Hall David R Downhole Drilling Network Using Burst Modulation Techniques
US20050284882A1 (en) * 2004-06-28 2005-12-29 Belongia Brett M Constant temperature disposable reservoir for use with volumetric fluid dispensing apparatus
US20050285754A1 (en) * 2004-06-28 2005-12-29 Hall David R Downhole transmission system

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070189165A1 (en) * 2006-02-16 2007-08-16 Intelliserv, Inc. Physically Segmented Logical Token Network
US7649473B2 (en) * 2006-02-16 2010-01-19 Intelliserv, Inc. Physically segmented logical token network
US20100054273A1 (en) * 2006-02-16 2010-03-04 Monte Johnson Physically Segmented Logical Token Network
US20090146836A1 (en) * 2007-12-11 2009-06-11 Schlumberger Technology Corporation Methods and apparatus to configure drill string communications
US9458711B2 (en) * 2012-11-30 2016-10-04 XACT Downhole Telemerty, Inc. Downhole low rate linear repeater relay network timing system and method
US20140153369A1 (en) * 2012-11-30 2014-06-05 Xact Downhole Telemetry, Inc. Downhole low rate linear repeater relay network timing system and method
US10060255B2 (en) 2012-11-30 2018-08-28 Xact Downhole Telemetry, Inc. Downhole low rate linear repeater relay network timing system and method
US10677049B2 (en) 2012-11-30 2020-06-09 Baker Hughes, A Ge Company, Llc Downhole low rate linear repeater relay network timing system and method
US10103846B2 (en) 2013-03-15 2018-10-16 Xact Downhole Telemetry, Inc. Robust telemetry repeater network system and method
US10673571B2 (en) 2013-03-15 2020-06-02 Baker Hughes Oilfield Operations Llc Robust telemetry repeater network system and method
US11095399B2 (en) * 2013-03-15 2021-08-17 Baker Hughes Oilfield Operations Llc Robust telemetry repeater network system and method
WO2015172251A1 (en) * 2014-05-14 2015-11-19 Evolution Engineering Inc. Apparatuses and methods for evaluating systems used in electromagnetic telemetry transmissions
US10113417B2 (en) 2014-05-14 2018-10-30 Evolution Engineering Inc. Apparatuses and methods for evaluating systems used in electromagnetic telemetry transmissions
US10901108B2 (en) * 2017-11-17 2021-01-26 Evolution Engineering Inc. Method and apparatus for placing receiver electrodes for EM telemetry transmissions

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